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N 体问题:多体量子力学:量子力学振动频率:在小的氢键簇中的应用。

N-body:Many-body QM:QM vibrational frequencies: application to small hydrogen-bonded clusters.

机构信息

Department of Chemistry and Biochemistry, University of Mississippi, University, Mississippi 38677-1848, USA.

出版信息

J Chem Phys. 2013 Nov 14;139(18):184113. doi: 10.1063/1.4829463.

Abstract

We present an efficient method for reproducing CCSD(T) (i.e., the coupled-cluster method with single, double and perturbative connected triple excitations) optimized geometries and harmonic vibrational frequencies for molecular clusters with the N-body:Many-body QM:QM technique. In this work, all 1-body through N-body interactions are obtained from CCSD(T) computations, and the higher-order interactions are captured at the MP2 level. The linear expressions from the many-body expansion facilitate a straightforward evaluation of geometrical derivative properties (e.g., gradients and Hessians). For (H2O)n clusters (n = 3-7), optimized structures obtained with the 2-body:Many-body CCSD(T):MP2 method are virtually identical to CCSD(T) optimized geometries. Harmonic vibrational frequencies calculated with this 2-body:Many-body approach differ from CCSD(T) frequencies by at most a few cm(-1). These deviations can be systematically reduced by including more terms from the many-body expansion at the CCSD(T) level. Maximum deviations between CCSD(T) and 3-body:Many-body CCSD(T):MP2 frequencies are typically only a few tenths of a cm(-1) for the H2O clusters examined in this work. These results are obtained at a fraction of the wall time of the supermolecular CCSD(T) computation, and the approach is well-suited for parallelization on relatively modest computational hardware.

摘要

我们提出了一种有效的方法,用于复制 CCSD(T)(即单、双和微扰连接三激发的耦合簇方法)优化的分子簇几何形状和简谐振动频率,使用 N 体:多体 QM:QM 技术。在这项工作中,所有的 1 体到 N 体相互作用都从 CCSD(T)计算中获得,而更高阶的相互作用则在 MP2 水平上捕获。多体展开的线性表达式便于直接评估几何导数性质(例如梯度和 Hessian)。对于 (H2O)n 簇(n = 3-7),使用 2 体:多体 CCSD(T):MP2 方法获得的优化结构与 CCSD(T)优化的几何形状几乎相同。用这种 2 体:多体方法计算的简谐振动频率与 CCSD(T)频率的差异最多只有几个 cm(-1)。通过在 CCSD(T)水平上包含更多的多体展开项,可以系统地减少这些偏差。在这项工作中检查的 H2O 簇中,CCSD(T)和 3 体:多体 CCSD(T):MP2 频率之间的最大偏差通常只有几个十分之一的 cm(-1)。这些结果是在超级分子 CCSD(T)计算的一小部分墙时间内获得的,并且该方法非常适合在相对适度的计算硬件上进行并行化。

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